2021
DOI: 10.1038/s41598-021-93783-8
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A fuzzy rank-based ensemble of CNN models for classification of cervical cytology

Abstract: Cervical cancer affects more than 0.5 million women annually causing more than 0.3 million deaths. Detection of cancer in its early stages is of prime importance for eradicating the disease from the patient’s body. However, regular population-wise screening of cancer is limited by its expensive and labour intensive detection process, where clinicians need to classify individual cells from a stained slide consisting of more than 100,000 cervical cells, for malignancy detection. Thus, Computer-Aided Diagnosis (C… Show more

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Cited by 100 publications
(41 citation statements)
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“…The research on HPV site integration and the algorithm model corresponding to gene sequencing results and the classification diagnosis of cervical lesions are under continuous development. In addition, cytology and colposcopy visual examination, which focus on image processing, are well established in the application of deep learning, showing good performance on specific datasets [ 43 , 44 ].…”
Section: Limitation and Discussionmentioning
confidence: 99%
“…The research on HPV site integration and the algorithm model corresponding to gene sequencing results and the classification diagnosis of cervical lesions are under continuous development. In addition, cytology and colposcopy visual examination, which focus on image processing, are well established in the application of deep learning, showing good performance on specific datasets [ 43 , 44 ].…”
Section: Limitation and Discussionmentioning
confidence: 99%
“…Graph convolutional network 5 7 [21] 2021 SIPaKMeD Deep learning -ResNet-152 5 [22] 2021 SIPaKMeD Deep learning-Compact VGG 5 [23] 2021 SIPaKMeD Ensemble of CNN Models 2 [24] 2020 SIPaKMeD AlexNet 5…”
Section: Table 1 Summary Of Recent Work Done On Pap Smear Cytology Im...mentioning
confidence: 99%
“…Deep learning pretrained models have made incredible progress in various kinds of medical image processing, specifically histopathological images, as they can automatically extract abstract and complex features from the input images ( Manna et al, 2021 ). Recently, CNN models based on deep learning design are dominant techniques in the CADs of cancer histopathological image classification ( Kumar et al, 2020 ; Mahbod et al, 2020 ; Albashish et al, 2021 ).…”
Section: Literature Reviewmentioning
confidence: 99%